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An Approach for Quantifying Dynamic Properties and Simulated Deployment Loading of Fire Service Escape Rope Systems

机译:消防逃生绳系统动态特性和模拟部署载荷的量化方法

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摘要

Rope systems are simple mechanical structures that provide life-critical protection from dynamic loading in a variety of applications where falls from height are possible. Recently, the Fire Service has realized the importance of using fall protection systems while endeavoring to gain a better understanding of how these systems will respond during fire ground deployments. A new extensometer, utilizing a linear variable differential transformer, was designed to advance the ability to characterize the dynamic and static properties of these ropes. A series of experiments were conducted to replicate various deployment scenarios, quantifying the effect of fall height, payout length, and ledge geometry on the dynamic loads a firefighter and his/her equipment may expect in realistic escape scenarios utilizing common rope systems. These loads are compared to occupational health-safety-based maximum load recommendations and the quasistatic strength of the rope. While the ropes constructed from all aramid fibers were the strongest in standard quasistatic tests; during dynamic loading they generated the largest maximum arrest loads that were consistently above the occupational health-safety recommended load of 8 kN. Finally, using the experimentally determined rope properties measured with the new extensometer, positive agreement was found between the experimental drop tests and numerical simulations.
机译:绳索系统是简单的机械结构,在可能从高处掉落的各种应用中,为动态载荷提供了至关重要的保护。近来,消防部门已经意识到使用防坠落系统的重要性,同时努力更好地了解这些系统在火场部署期间的响应方式。设计了一种新的引伸计,该引伸计利用线性可变差动变压器来提高表征这些绳索的动态和静态特性的能力。进行了一系列实验以复制各种部署方案,量化跌落高度,支出长度和壁架几何形状对消防员及其设备在使用普通绳索系统的实际逃生方案中可能期望的动态载荷下的影响。将这些负载与基于职业健康安全的最大负载建议和绳索的准静态强度进行比较。在标准准静态测试中,所有芳纶纤维制成的绳索最坚固;在动态载荷期间,它们产生的最大最大制动载荷始终高于职业健康安全建议的8 kN载荷。最后,使用由新型引伸计测量的实验确定的绳索性能,在实验跌落试验和数值模拟之间发现了积极的一致性。

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